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MPFS160T 数据表(PDF) 26 Page - Microchip Technology |
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MPFS160T 数据表(HTML) 26 Page - Microchip Technology |
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26 / 50 page ![]() Figure 4-1. PLL Block Diagram FPGA Feedback Clock Reference Clock0 FOUT0 FOUT1 FOUT2 FOUT3 FOUT[0:3] Phase Select Charge Pump LOCK Internal Feedback Path Reference Clock1 Lock Detect PFD ÷ 1-63 ÷ 1-4095 ÷ 1-127 ÷ 1-127 ÷ 1-127 ÷ 1-127 VCO FPGA Feedback Clock Reference Clock0 FOUT0 FOUT1 FOUT2 FOUT3 FOUT[0:3] Phase Select Charge Pump LOCK Internal Feedback Path Reference Clock1 Lock Detect PFD ÷ 1-63 ÷ 1-4095 ÷ 1-127 ÷ 1-127 ÷ 1-127 ÷ 1-127 VCO 4.1.3 Clock Network The clock network is designed to route clocks and asynchronous reset signals to large sections of the fabric with limited skew. On occasion, the network can also be used for other high fanout signals that can tolerate long delays, such as non-timing-critical synchronous enables or resets. There are two main clock networks for the FPGA fabric, global, and regional clocks. 4.1.3.1 Global Clocks There are 24 clocks on the device with global, low-skew scope to all synchronous elements. The global can be divided into left and right sides of the device. Thus, the number of global clocks can increase to 48 total clocks with 24 in the left and 24 in the right. 4.1.3.2 Regional Clocks There are up to 38 regional clock domains that interface to the edges of the device. The regional clocks provide a fixed number of logic elements based on the size of the device. Up to 14 clocks are available for the FPGA I/Os and up to 24 clocks are available for the transceiver lanes, one for each lane direction. These are the fast insertion clock networks used to move data in and out of the fabric. 4.2 Debug Probe System Two specified user I/Os can be configured (at design capture stage) as either two, single-ended live probes or one, differential live probe. These live probes can provide read access to any register in the FPGA fabric, to the output pipeline registers in the LSRAMs, and to all the registers in the math block in real time without having to re-instrument the code. A snapshot of all internal probe points can be created and read-out asynchronously. The live-probe feature can be considered a two-channel oscilloscope, whose two channels can be routed out to I/Os for external observation and to internal ports for fabric design observation. Selecting different probe points within the PolarFire SoC FPGA occurs dynamically through commands over the JTAG port using SmartDebug. Reprogramming of the FPGA is not required. The features of the debug probe system are: • Active probe allows dynamic asynchronous read and write to a flip-flop or a probe point. This enables quick internal observation of the logic output or experimentation on how the logic will be affected by writing to a probe point. • Memory debug allows dynamic asynchronous read and write to a µSRAM or a large SRAM block to quickly verify if the content of the memory is changing as expected. • Probe insertion allows routing of nodes or debug points in the FPGA design externally through unused I/Os. An oscilloscope/logic analyzer can be attached to monitor them as live signals. 4.3 I/Os PolarFire SoC FPGA device user I/Os support multiple I/O standards while providing the high bandwidth needed to maximize the internal logic capabilities of the device and achieve the required system-level performance. Programmable Logic Subsystem © 2021 Microchip Technology Inc. and its subsidiaries Overview DS60001656C-page 26 |
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